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Learning from demonstration in the wild

Abstract:
Learning from demonstration (LfD) is useful in settings where hand-coding behaviour or a reward function is impractical. It has succeeded in a wide range of problems but typically relies on manually generated demonstrations or specially deployed sensors and has not generally been able to leverage the copious demonstrations available in the wild: those that capture behaviours that were occurring anyway using sensors that were already deployed for another purpose, e.g., traffic camera footage capturing demonstrations of natural behaviour of vehicles, cyclists, and pedestrians. We propose video to behaviour (ViBe), a new approach to learn models of behaviour from unlabelled raw video data of a traffic scene collected from a single, monocular, initially uncalibrated camera with ordinary resolution. Our approach calibrates the camera, detects relevant objects, tracks them through time, and uses the resulting trajectories to perform LfD, yielding models of naturalistic behaviour. We apply ViBe to raw videos of a traffic intersection and show that it can learn purely from videos, without additional expert knowledge.
Publication status:
Published
Peer review status:
Peer reviewed

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Publisher copy:
10.1109/ICRA.2019.8794412

Authors

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Institution:
University of Oxford
Division:
MPLS Division
Department:
Engineering Science
Role:
Author
More by this author
Institution:
University of Oxford
Division:
MPLS Division
Department:
Engineering Science
Role:
Author


Publisher:
IEEE
Host title:
2019 International Conference on Robotics and Automation (ICRA)
Journal:
2019 International Conference on Robotics and Automation (ICRA) More from this journal
Pages:
775-781
Publication date:
2019-08-12
Acceptance date:
2019-03-26
DOI:
EISSN:
2577-087X
ISBN:
9781538660270


Pubs id:
pubs:984448
UUID:
uuid:1595342a-5cc4-4bf2-a919-22684b414c7e
Local pid:
pubs:984448
Source identifiers:
984448
Deposit date:
2019-03-26
ARK identifier:

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